Liu Haijun, Thi Quoc Huy, Man Ping, Chen Xin, Chen Tianren, Wong Lok Wing, Jiang Shan, Huang Lingli, Yang Tiefeng, Leung Ka Ho, Leung Tsz Tung, Gao Shan, Chen Honglin, Lee Chun-Sing, Kan Min, Zhao Jiong, Deng Qingming, Ly Thuc Hue
Department of Chemistry and Center of Super-Diamond & Advanced Films (COSDAF), City University of Hong Kong, Kowloon, Hong Kong, 999077, P. R. China.
City University of Hong Kong Shenzhen Research Institute, Shenzhen, 518057, P. R. China.
Adv Mater. 2023 Apr;35(14):e2210503. doi: 10.1002/adma.202210503. Epub 2023 Feb 25.
The scalable 2D device fabrication and integration demand either the large-area synthesis or the post-synthesis transfer of 2D layers. While the direct synthesis of 2D materials on most targeted surfaces remains challenging, the transfer approach from the growth substrate onto the targeted surfaces offers an alternative pathway for applications and integrations. However, the current transfer techniques for 2D materials predominantly involve polymers and organic solvents, which are liable to contaminate or deform the ultrasensitive atomic layers. Here, novel ice-aided transfer and ice-stamp transfer methods are developed, in which water (ice) is the only medium in the entire process. In practice, the adhesion between various 2D materials and ice can be well controlled by temperature. Through such controlled adhesion of ice, it is shown that the new transfer methods can yield ultrahigh quality and exceptional cleanliness in transferred 2D flakes and continuous 2D films, and are applicable for a wide range of substrates. Furthermore, beyond transfer, ice can also be used for cleaning the surfaces of 2D materials at higher temperatures. These novel techniques can enable unprecedented ultraclean 2D materials surfaces and performances, and will contribute to the upcoming technological revolutions associated with 2D materials.
可扩展的二维器件制造和集成需要二维层的大面积合成或合成后转移。虽然在大多数目标表面上直接合成二维材料仍然具有挑战性,但从生长衬底转移到目标表面的方法为应用和集成提供了一条替代途径。然而,目前用于二维材料的转移技术主要涉及聚合物和有机溶剂,这容易污染或使超灵敏的原子层变形。在此,开发了新型的冰辅助转移和冰印章转移方法,其中水(冰)是整个过程中的唯一介质。在实际操作中,各种二维材料与冰之间的附着力可以通过温度很好地控制。通过这种对冰的可控附着力,结果表明新的转移方法可以在转移的二维薄片和连续二维薄膜中产生超高的质量和出色的洁净度,并且适用于多种衬底。此外,除了转移之外,冰还可用于在较高温度下清洁二维材料的表面。这些新技术能够实现前所未有的超清洁二维材料表面和性能,并将推动与二维材料相关的即将到来的技术革命。